US10976455B2 - Test system for microseismic test of rock mass fractures - Google Patents
Test system for microseismic test of rock mass fractures Download PDFInfo
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- US10976455B2 US10976455B2 US16/008,044 US201816008044A US10976455B2 US 10976455 B2 US10976455 B2 US 10976455B2 US 201816008044 A US201816008044 A US 201816008044A US 10976455 B2 US10976455 B2 US 10976455B2
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- microseismic
- monitoring
- push rod
- rock mass
- probe
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/16—Receiving elements for seismic signals; Arrangements or adaptations of receiving elements
- G01V1/162—Details
- G01V1/166—Arrangements for coupling receivers to the ground
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/16—Receiving elements for seismic signals; Arrangements or adaptations of receiving elements
- G01V1/20—Arrangements of receiving elements, e.g. geophone pattern
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/16—Receiving elements for seismic signals; Arrangements or adaptations of receiving elements
- G01V1/18—Receiving elements, e.g. seismometer, geophone or torque detectors, for localised single point measurements
- G01V1/181—Geophones
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V2210/00—Details of seismic processing or analysis
- G01V2210/10—Aspects of acoustic signal generation or detection
- G01V2210/12—Signal generation
- G01V2210/123—Passive source, e.g. microseismics
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V2210/00—Details of seismic processing or analysis
- G01V2210/10—Aspects of acoustic signal generation or detection
- G01V2210/12—Signal generation
- G01V2210/123—Passive source, e.g. microseismics
- G01V2210/1232—Earthquakes
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V2210/00—Details of seismic processing or analysis
- G01V2210/10—Aspects of acoustic signal generation or detection
- G01V2210/14—Signal detection
- G01V2210/142—Receiver location
- G01V2210/1429—Subsurface, e.g. in borehole or below weathering layer or mud line
Definitions
- the invention relates to the technical field of engineering geological microseismic monitoring, and particularly relates to a test system for a microseismic test with reusable microseismic sensor.
- Rock (rock mass) deformation and damage in engineering construction may directly endanger the safety of the construction of the engineering and can even cause catastrophic impact. Therefore, effective monitoring and prediction of rock (rock mass) stability and rock burst dynamic disaster is one of the important contents of safety in civil engineering.
- microseismic is used for the monitoring and prediction of rock (rock mass) stability and rock burst dynamic disaster in engineering construction.
- microseismic monitoring sensors need to be fixed in the surrounding rock area to be monitored before the excavation in order to accurately predict the possible deformation and failure of the surrounding rock and the dynamic disaster.
- microseismic sensors need to be arranged in a three-dimensional spatial distribution around the rock mass to be monitored, the more the sensors and the more reasonable is the distribution, the more accurate are the monitoring results.
- it is necessary to drill a monitoring hole in the rock (rock mass) by a drilling machine before the excavation of the rock (rock mass) and install a microseismic sensor in the monitoring hole.
- the depth of the monitoring hole depends on the buried depth of excavation and the monitored area, the depth of the monitoring hole increases with the increase of buried depth of the engineering and the monitored area.
- Some monitoring holes are several tens of meters deep or even hundreds of meters deep.
- multiple microseismic sensors are usually used to monitor microseisms in different parts of the monitoring hole, the deeper the monitoring hole is, the more microseismic sensors are installed. It is difficult to ensure concentricity between the upper and lower monitoring holes, and it is difficult to keep the wall surfaces of the monitoring holes smooth, so it is difficult to install microseismic sensors.
- the microseismic sensor is expensive. In order to retrieve the microseismic sensor after the monitoring is completed and reduce the engineering cost, in the on-site installation of the microseismic monitoring sensor in the engineering, the microseismic sensor is usually placed directly in the monitoring hole, and the residual water in the monitoring hole is used as a medium for signal transmission between the rock mass and the sensor.
- this method has the following disadvantages: first, the direction of the monitoring hole must be downward, this method is not suitable for monitoring holes that are completely horizontal or have a certain upward angle; second, for inclined or downward monitoring holes, the rock mass needs to be relatively intact, the monitoring hole needs to hold the injected water without losing water along the cracks in the monitoring hole, or avoid seepage from the inside of the monitoring hole to ensure that the sensor is always in the water, but the actual situation on site is difficult to meet these requirements; third, although water can be used as a coupling medium for signal transmission, the density of water is lower and its transmission effect is not as good as that of the sensor directly contacting with the rock wall; fourth, since the liquid can only transmit longitudinal waves and cannot transmit transverse waves, the location of the rock breaking signal on site must be determined by relying on the transverse wave signal, therefore this method results in the loss of a large number of monitoring signals and the reliability of the monitoring results is greatly reduced.
- this method has the following disadvantages: first, this method is generally only applicable to shallow depth monitoring holes, and requires that the monitoring holes are completely concentric and the hole walls are smooth, but these requirements cannot be guaranteed in actual construction; secondly, the mounting device has a large size and is only applicable to large-diameter monitoring holes, resulting in a high monitoring hole cost; third, the entire transmission rod and the mounting structure are rigidly inserted into the monitoring hole by applying pressure, not only the friction force is high, prone to wear out of the cable or microseismic sensor, but also the transmission rod and the mounting structure are easy to be stuck in the monitoring hole at a specific position and cannot be sent to a specific installation site; fourth, the installation process is time-consuming, labor-intensive and requires a lot of labor.
- the present invention aims to provide a test system for the microseismic test of rock mass fractures, so as to solve the problems of effective contact coupling between the microseismic sensor and the monitoring hole, recycling for reusing and easy installation, improve the accuracy of microseismic monitoring, and reduce the cost of microseismic monitoring systems.
- a test system for a microseismic test of rock mass fractures including at least one microseismic sensor, a push rod provided at two ends of the microseismic sensor through a connecting mechanism for feeding the microseismic sensor into a monitoring hole, an introducing mechanism mounted on the push rod for introducing the microseismic sensor into the monitoring hole, a hydraulic system providing support hydraulic oil for the microseismic sensor, a microseismic monitoring computer connected with the signal of microseismic sensor;
- the microseismic sensor includes a microseismic probe, a holding component holding the microseismic probe, a support plate and a hydraulic support mechanism; the holding component can make a lower side surface of the microseismic probe contact and couple with a wall surface of the monitoring hole in which the microseismic probe is disposed, a support side plate surface of the support plate is an arc surface matched with the wall surface of the monitoring hole;
- the hydraulic support mechanism is a hydraulic cylinder piston support mechanism
- the holding component is a probe sleeve including a straight cylinder with an opening structure and a cone head, a shape and a structure of a cavity of the probe sleeve is matched with a shape and a structure of the microseismic probe to make the lower side surface of the microseismic probe disposed in the probe sleeve and a cone tip of the microseismic probe stick out of the probe sleeve.
- a tail end of the probe sleeve is provided with an end cap connected with a probe sleeve body through a screw thread pair, the microseismic probe is fixedly installed in the cavity of the probe sleeve through the end cap.
- the hydraulic cylinder piston support mechanism is disposed on two sides of the holding component, and two sets of hydraulic cylinder piston support mechanisms are disposed on each side of the holding component, the bottom of the hydraulic cylinder is arranged on the non-support surface of the support plate, the piston is connected to the back of the holding component through the piston rod.
- a connecting structure where the push rod is connected with the microseismic sensor by the connecting mechanism is a polyhedral socket connecting structure.
- the connecting mechanism includes a connecting frame, a threaded sleeve and a connecting rod, a first end of the connecting frame is fixedly connected to one end of the microseismic sensor, a second end of the connecting frame is hinged to the threaded sleeve through a hinge structure, a first end of the connecting rod is processed with an external thread matched with the threaded sleeve, and a second end of the connecting rod is a polyhedral cylinder; a first end of the push rod connected with the connecting mechanism is processed with a polyhedral column hole socketed with the polyhedral cylinder of the connecting rod, and a second end of the push rod is processed with an extended connecting structure, the polyhedral column hole of the push rod and the polyhedral cylinder of the connecting rod constitute a polyhedral socket structure, and the polyhedral cylinder
- the polyhedral socket structure may be a tetrahedron socket structure, a hexagonal socket structure, a octahedral socket structure, and preferably the hexagonal socket structure.
- the extended connecting structure of the push rod may be a threaded connecting structure, a lap joint structure, a socket connecting structure, etc., as long as it can be matched with the extended connecting structure to form the connecting pair.
- the connecting frame in the connecting mechanism may be designed to include a ring matched with the microseismic sensor, a connecting head and two connecting arms with bending structures, the two connecting arms are symmetrically arranged, a first end of the connecting arm is fixedly connected with the ring, and a second end of the connecting arm is connected with the connecting head, the connecting frame is hinged to the threaded sleeve through the connecting head so that the push rod can swing relative to the microseismic sensor.
- the hydraulic system includes the oil supply line and the oil return line, first ends of the oil supply line and the oil return line are connected to a hydraulic oil tank, second ends of the oil supply line and the oil return line are connected to the hydraulic oil pressure chamber, a pressure oil pump, a control valve, and an oil pressure gauge are provided on the oil supply line, and a control valve is provided on the oil return line.
- the roller introducing mechanism is three-rollers introducing mechanism, the three rollers of the three-rollers introducing mechanism are arranged along two diametric directions perpendicular to each other and move along the wall surface of the monitoring hole respectively, one roller is opposite to the support plate in the microseismic sensor, and the other two rollers are oppositely arranged.
- microseismic monitoring system provided by the present invention to perform microseismic monitoring, when the monitoring hole is relatively deep, multiple microseismic sensors can be used to perform microseismic monitoring on different azimuths of the monitoring hole.
- the microseismic sensors can be connected to each other by the extended connecting structure at the tail end of the push rod and an extended rod to constitute a monitoring system for the extending need.
- the hydraulic twin-cylinder support retrievable microseismic monitoring system provided by the present invention solves the problems of installation and effective coupling of multiple microseismic sensors for a monitoring hole with a relatively large depth and requiring multiple microseismic sensors to perform microseismic monitoring on different parts, further filling the technical gap.
- the outstanding features are as follows:
- microseismic sensors can be checked during the test process, and microseismic sensors can also be recycled for reusing, reducing the usage cost.
- each microseismic sensor can be arranged in the same monitoring hole as required, the orientation of the effective monitoring surface of each microseismic sensor can be determined separately according to the monitoring needs during installation by the ingeniously designed connecting mechanism.
- the ingeniously designed hydraulic support mechanism ensures that the microseismic sensor can be effectively coupled with the monitoring hole wall under the unfavorable conditions such as nonconcentricity due to the fracture of the rock mass or the deep monitoring hole.
- the present invention not only ensures the installation and coupling effect, improving the installation efficiency, but also ensures the recovery and reuse of microseismic sensors, saving the costs.
- FIG. 1 is a schematic diagram of a microseismic monitoring system according to the present invention.
- FIG. 2 is a schematic diagram in a direction of B-B (top view) in FIG. 1 .
- FIG. 3 is an enlarged schematic view of Part 1 (microseismic sensor) in FIG. 1 .
- FIG. 4 is a schematic diagram in a direction of A-A in FIG. 1 .
- FIG. 5 is a schematic diagram of Part 1 (bottom view) in FIG. 2 .
- FIG. 6-1 and FIG. 6-2 are schematic diagrams of a connecting structure between a push rod and a microseismic sensor;
- FIG. 6-1 is a front view of the connecting structure;
- FIG. 6-2 is a top view of the connecting structure.
- FIG. 7-1 , FIG. 7-2 , and FIG. 7-3 are structural diagrams of a push rod; FIG. 7-1 is a front view; FIG. 7-2 is a left view; FIG. 7-3 is a top view.
- FIG. 8-1 , FIG. 8-2 , and FIG. 8-3 are structural diagrams of a connecting rod, FIG. 8-1 is a front view; FIG. 8-2 is a left view; and FIG. 8-3 is a top view.
- FIG. 9-1 , FIG. 9-2 and FIG. 9-3 are structural diagrams of an introducing mechanism
- FIG. 9-1 is a structural diagram of the introducing mechanism in a direction of C in FIG. 1
- FIG. 9-2 is a left view of the introducing mechanism shown in FIG. 9-1
- FIG. 9-3 is a top view of the introducing mechanism shown in FIG. 9-1 .
- FIG. 10 is an enlarged schematic view of the hydraulic system of FIG. 1 .
- microseismic monitoring system with reusable microseismic sensor according to the present invention will be further described through the embodiments.
- the hydraulic twin-cylinder support retrievable microseismic monitoring system in this embodiment has the structure shown in FIGS. 1-10 , including one microseismic sensor 1 , a push rod 2 provided at two ends of the microseismic sensor through a connecting mechanism for feeding the microseismic sensor into a monitoring hole, an introducing mechanism 3 mounted on the push rod for introducing the microseismic sensor into the monitoring hole, a hydraulic system 5 providing support hydraulic oil for the microseismic sensor, and a microseismic monitoring computer 4 connected with the signal of microseismic sensor.
- the microseismic sensor is a retrievable microseismic sensor, including a microseismic probe 1 - 3 , a probe sleeve 1 - 2 holding the microseismic probe, an end cap 1 - 5 mounting and fixing the probe inside the probe sleeve 1 - 2 , a support plate 1 - 11 and a hydraulic support mechanism;
- the probe sleeve 1 - 2 includes a straight cylinder with an opening structure and a cone head, the shape and structure of the cavity of the probe sleeve 1 - 2 are matched with the shape and structure of the microseismic probe 1 - 3 so as to make the lower side surface of the microseismic probe 1 - 3 disposed in the probe sleeve 1 - 2 and a cone tip of the microseismic probe 1 - 3 stick out of the probe sleeve 1 - 2 , and the lower side surface of the microseismic probe 1 - 3 disposed in the probe
- the hydraulic oil inlet of a hydraulic oil pressure chamber 1 - 4 is connected to the oil supply line 5 - 4 of the hydraulic system 5
- the hydraulic oil outlet of the hydraulic oil pressure chamber 1 - 4 is connected to the oil return line 5 - 5 of the hydraulic system 5
- the lower side surface of the microseismic probe 1 - 3 and the support surface of the support plate 1 - 11 are effectively coupled with the inner wall of the monitoring hole under the action of the hydraulic oil so as to monitor the vibration of the rock mass.
- One end of the push rod 2 connected with the connecting mechanism is processed with a hexagonal column hole, the other end is processed with a hexagonal column hole connected to the extended rod.
- the connecting mechanism includes a connecting frame 1 - 10 , a threaded sleeve 1 - 9 and a connecting rod 2 - 1 ,
- the connecting frame includes a ring fixedly connected with the microseismic sensor, a connecting head and two connecting arms with bending structures, the two connecting arms are symmetrically arranged, a first end of the connecting arm is fixedly connected with the ring, and a second end of the connecting arm is connected with the connecting head, the connecting frame 1 - 10 is hinged to the threaded sleeve 1 - 9 through the connecting head; one end of the connecting rod 2 - 1 is processed with an external thread matched with the threaded sleeve 1 - 9 , the other end of the connecting rod 2 - 1 is a hexagonal cylinder socketed with the polyhedral column hole of the push rod, the hexagonal cylinder of the connecting rod 2 - 1 is fixed in the hexagonal column hole by fastening screws.
- the roller introducing mechanism 3 is three-rollers introducing mechanism, the three rollers of the three-rollers introducing mechanism are arranged along two diametric directions perpendicular to each other and move along the wall surface of the monitoring hole respectively, one roller is opposite to the support plate 1 - 11 in the microseismic sensor, and the other two rollers are oppositely arranged.
- the hydraulic system 5 includes the oil supply line 5 - 4 and the oil return line 5 - 5 , first ends of the oil supply line 5 - 4 and the oil return line 5 - 5 are connected to the hydraulic oil tank 5 - 7 , second ends of the oil supply line 5 - 4 and the oil return line 5 - 5 are connected to the hydraulic oil pressure chamber 1 - 4 , a pressure oil pump 5 - 1 , a control valve 5 - 2 , and an oil pressure gauge 5 - 3 are provided on the oil supply line 5 - 4 , and a control valve 5 - 6 is provided on the oil return line 5 - 5 .
- Method of using mounting the microseismic probe 1 - 3 in the probe sleeve 1 - 2 , and fixing the microseismic probe 1 - 3 in the cavity of the probe sleeve 1 - 2 through the end cap 1 - 5 ; connecting and fixing the piston rod 1 - 6 with the piston 1 - 7 , and then installing the piston rod 1 - 6 and the piston 1 - 7 into the hydraulic cylinder 1 - 1 , connecting the bottom of the hydraulic cylinder 1 - 1 to the support plate 1 - 11 , connecting the piston to the lug seat on the side of the probe sleeve 1 - 2 through the piston rod; installing the push rod 2 at the two ends of the microseismic sensor 1 through the connecting mechanism; installing the three-rollers introducing mechanism 3 on the push rod; connecting the signal output of the microseismic sensor with the signal input of the monitoring computer; connecting the oil supply line of the hydraulic system 5 with the hydraulic oil inlet of the hydraulic oil pressure chamber, and connecting the oil return line of the
- the microseismic sensor When the microseismic sensor is in the right place, starting the pressure oil pump in the hydraulic system, opening the control valve 5 - 4 on the oil supply line and closing the control valve 5 - 6 on the oil return line, the hydraulic oil then enters into the hydraulic oil pressure chamber 1 - 4 of the hydraulic cylinder, when the pressure value on the oil pressure gauge reaches the predetermined pressure value, closing the pressure oil pump 5 - 1 and the control valve 5 - 4 , at this time, the lower side surface of the microseismic probe 1 - 3 and the support side arc plate surface of the support plate are effectively coupled with the inner wall of the monitoring hole under the action of the hydraulic oil so as to monitor the vibration of the rock mass.
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- Remote Sensing (AREA)
- Engineering & Computer Science (AREA)
- Acoustics & Sound (AREA)
- Geology (AREA)
- Environmental & Geological Engineering (AREA)
- General Life Sciences & Earth Sciences (AREA)
- General Physics & Mathematics (AREA)
- Geophysics (AREA)
- Investigation Of Foundation Soil And Reinforcement Of Foundation Soil By Compacting Or Drainage (AREA)
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CN2017104475450 | 2017-06-14 | ||
CN201710447545.0 | 2017-06-14 | ||
CN201710447545.0A CN107132572B (en) | 2017-06-14 | 2017-06-14 | Test platform for rock mass fracture micro-seismic test |
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US20180364377A1 US20180364377A1 (en) | 2018-12-20 |
US10976455B2 true US10976455B2 (en) | 2021-04-13 |
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Cited By (1)
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US11319810B1 (en) * | 2021-06-23 | 2022-05-03 | China University Of Geosciences (Wuhan) | Monitoring device for deformation of locked patch crack of rock slope and arrangement method |
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CN107121695B (en) * | 2017-06-23 | 2019-11-08 | 四川大学 | Fluid pressure type acoustic monitoring system |
CN110531411B (en) * | 2019-09-24 | 2024-06-14 | 西安科技大学 | Sensor installation and recovery structure and method for ESG microseismic monitoring system |
CN112578427A (en) * | 2020-12-03 | 2021-03-30 | 中国地质大学(武汉) | Fixing device for advanced geological forecast signal acquisition sensor by tunnel elastic wave reflection method |
CN113818927B (en) * | 2021-10-14 | 2024-03-15 | 山东省煤田地质规划勘察研究院 | Rock burst control device with energy guiding function |
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CN107132572B (en) | 2023-03-10 |
CN107132572A (en) | 2017-09-05 |
US20180364377A1 (en) | 2018-12-20 |
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